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def main():
    try:
        print "hardfart"
        return 0
    except:
        return 1

if __name__ == '__main__':
    exit(main())

Can one kind programmer tell me why this spits out the following error on exit?

Traceback (most recent call last):
File "C:/Apps/exp_exit.py", line 9, in ,module.
exit(main())
File "C:\Apps\python2.7.2\lib\site.py", line 372 in __call__
    raise SystemExit(code)
SystemExit: 0

This is causing an error on exit in a project that's set up similarly. For that project, after using gui2exe to compile an exe, when closing the program I get this related error:

Traceback (most recent call last):
  File "checkHDBox.py", line 303, in <module>
NameError: name 'exit' is not defined

So if exit is generating this error, how do I exit then? And if I create an exception handler for exit, doesn't that replace the default action that python takes with the exit function?

Thanks.

Edit:

I think this answers my own question.

The traceback here is from IDLE, I think it's a default behavior from other sources I've read.

Traceback (most recent call last):
File "C:/Apps/exp_exit.py", line 9, in ,module.
exit(main())
File "C:\Apps\python2.7.2\lib\site.py", line 372 in __call__
    raise SystemExit(code)
SystemExit: 0

The traceback here was fixed by using sys.exit() instead of exit(0)

Traceback (most recent call last):
  File "checkHDBox.py", line 303, in <module>
NameError: name 'exit' is not defined
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1 Answer 1

You exit a program by raising SystemExit. This is what exit() does. Someone has incorrectly written an exception handler that catches all exceptions. This is why you only catch the exceptions you can handle.

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1  
Scratch that. This traceback comes from IDLE, do you know if that is intended functionality for it to bring that traceback up on any exit call? –  Cavendish Owl Sep 29 '11 at 19:32

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